Highly sensitive AIEE active fluorescent probe for detection of deferasirox: extensive experimental and theoretical studies

High concentrations of deferasirox (DFX) in living organisms cause hepatic, gastric and renal malfunctions. Therefore, it is significant to establish an accurate and efficient approach for the detection of deferasirox (DFX) to protect public health. Herein, we synthesized a thiourea-based diphenylacetamide probe MPT for the effective sensing of deferasirox through the fluorescence quenching phenomenon. The designed probe MPT shows a fluorescence quenching response toward deferasirox (DFX) through photo-induced electron transfer (PET). Furthermore, DFT studies were performed to support the experimental results. 1H-NMR titration experiment was used to explore the interaction type between probe MPT and DFX. The existence of non-covalent interactions was verified with spectroscopic studies that were assisted by NCI studies, QTAIM and SAPT0 analysis. Dynamic light scattering (DLS) analysis and scanning electron microscopy (SEM) were used to investigate the complexation of probe MPT with DFX. Moreover, the on-site solution phase and solid-state detection of DFX by probe MPT are executed. Additionally, the practical applications of probe MPT to sense DFX were also revealed in human plasma as well as in artificial urine samples.


Introduction
Iron chelators constitute a class of drugs which prevent iron toxicity in patients who require long-term blood transfusion such as those suffering from different types of anaemia and thalassemia.Deferoxamine (DFO), deferasirox (DFX) and deferiprone are some common iron chelators inhibiting iron overload. 1eferasirox, 4-[3,5-bis(2-hydroxyphenyl)-1,2,4-triazol-1-yl] benzoic acid, is a drug administered orally in the dispersible form to treat drug overload in patients having myelodysplastic anaemia, sickle cell anaemia, hemolytic anaemia, aplastic anaemia but most importantly b-thalassemia. 2 DFX is associated with the nonproliferation of cancer cells as they require more iron for their growth. 3DFX demonstrates anti-proliferative activity against breast cancer, 4 pancreatic cancer, 5 melanoma and lung cancer. 6FX, one of the best chelators for thalassemia patients, exhibits strong interaction with human serum albumin (HSA) in blood.A hexacoordinated Fe(III) complex is formed by two molecules of DFX. 7 However, excess and continuous intake of DFX may cause nephrotoxicity, 8 gastrointestinal haemorrhage, hepatic toxicity and increased serum creatinine level. 9Because of its adverse effects on human health DFX level needs to be monitored and controlled.Some commonly used techniques such as plasma mass spectrometry, 10 electrocatalytic detection, 11 voltammetry, 12 capillary electrophoresis, 13 atomic absorption spectroscopy 14 and LC-MS 15 are employed for the detection of iron chelators.These techniques are known to have many limitations mainly poor selectivity, low sensitivity, complex sample treatment, long time analysis and expensive equipment. 16Therefore, the development of new analytical techniques is the prime requirement for selective, inexpensive, sensitive and accurate detection of DFX.Recently, uorescent probes have emerged as efficient analytical tools because of their simplicity, low detection limit, distinguished selectivity, high efficiency, and fast response time. 17,18umerous organic uorophores with less p-conjugation or higher conjugation 19 exhibit strong emission in dilute solution but are prone to excimer or exciplex complex formation 20 in the solid or aggregated state, because of planar geometry and weak intermolecular forces such as p-p stacking, 21 causing them to become non-emissive.It is known as aggregation-caused quenching (ACQ), 22,23 limits the practical use of uorophores to dilute solutions only and obstructs the formation of portable probes. 24Aggregation-induced emission (AIE), the inverse phenomenon of ACQ, rst reported by Tang et al. in 2001 25 have many advantages over ACQ.AIE luminogens (AIEgens) have little to no uorescence in dilute solution but show substantial luminescence while in the concentrated form or when they form aggregates in a solvent of poor solubility such as water. 26,27Many uorescent compounds which are poorly emissive in the solution state, establish remarkably enhanced emission upon aggregation 28 due to the aggregation-induced emission enhancement (AIEE) property, rst discovered by Park et al. in 2002. 29The molecular interactions such as restricted intramolecular rotation (RIR), 30 p-p interaction, J-aggregates 31 and inhibition of excited state intramolecular proton transfer (ESIPT) 32 are some plausible mechanisms for the AIEE property in uorophores.Predominant characteristics of AIEE active probes, for instance, large Stokes' shi, 33 excellent emission, characteristic sensitivity, great stability in polar solvents, resistance to photobleaching, 34 and high SNR (signal-to-noise ratio) make them superior to ordinary probes hence contributing to their applicability in various areas including bio probes, 35 molecular logic gates, cell imaging, OLEDs as well as explosives sensing.The signicance of AIE and AIEE luminogens intrigued scientists to develop uorescent probes such as benzimidazolebased, 36 coumarin-based 37 and graphene oxide-based probes 38 for the sensing of deferasirox (DFX).
As an extension of our research [39][40][41][42][43][44][45][46] to develop new uorescent probes, an easily accessed MPT probe with thiourea functionality was synthesized.The incorporation of thiourea functionality in uorophore increased the chances of interacting non-covalently with the analyte in the aqueous state.As anticipated, the designed probe MPT becomes emissive in an aggregated and solid-state and exhibits selective quenching against deferasirox.Furthermore, the sensing mechanism was investigated by uorescence spectroscopy, UV-vis spectroscopy, Job's plot, 1 H-NMR titration experiment and DFT analysis.

Spectrouorimetric experiment
10 mM in water/THF (9 : 1, v/v) was selected as the optimum concentration of probe MPT for the uorescent titration experiment.This concentration of probe MPT remained the same for other uorescence studies.1000 mM stock solution of potentially detectable drugs including deferasirox (DFX), mefenamic acid (MFA), drotaverine (DV), L-methyl folate (L-MTHF), paracetamol (PCM), ebastine (EBA), doxycycline (DOX) and hydroxyurea (HYD) was prepared in water/THF (9 : 1, v/v).In a 1000 mL cuvette, the gradually varying concentrations of drugs from 10 to 100 mM were scanned to observe the emission spectrum of probe MPT.When the probe MPT was irradiated at the excitation wavelength of 305 nm, the probe showed the maximum emission at 394 nm.

Pretreatment of plasma
Different concentrations of DFX can be present in the plasma of patients.To check whether the probe MPT could be utilised to sense different concentrations of DFX in plasma the different concentrations of DFX were identied by using the standard addition method.The emission of probe MPT was scanned aer adding the known concentration of DFX (0 to 100 mM) to the plasma samples.

Computational studies
DFT studies were executed by using Gaussian 09 soware. 47isualization and analysis were done by using Gauss View 5.0 soware. 48Using uB97XD/6-31G (d, p) level of theory, 49 the geometric studies were done to determine the interaction energies among the probe MPT and analyte.To improve the long-range non-covalent interaction uB97XD/6-31G (d, p) basis set was preferred instead of other DFT functionals.The given formula, which incorporated a basis set superposition (BSSE) correction, was used to nd out the interaction energies.
Here E int signies interaction energy, energy of probe (E s ), energy of analyte (E a ), energy of complex (E c ) and basis set superposition error (E BSSE ) correspondingly.Thermodynamic stability is proportional to the interaction energy, it increases with an increase in interaction energy and vice versa.
DFT studies including the frontier molecular orbital (FMO), density of states (DOS) and natural bond orbital (NBO) analysis were carried out to examine the electronic properties of cooperating species.When probe MPT interacts with a specic analyte it forms a new energy level that was described with the help of density of state (DOS).FMO analysis reveals the energy level of HOMO and LUMO and their energy gap.GaussSum 50 soware was used to draw the spectra of the density of state (DOS).NBO and EDD were performed to describe the electron transfer between two interrelating species.NBO provides the numerical values while the EDD provides its graphical representation.
Weak intermolecular forces including van der Waals interaction and steric repulsion among two interacting moieties were studied with the help of non-covalent interaction (NCI) and electron density difference (EDD) analysis.VMD and Multiwfn 51 soware was used for the analysis of these non-covalent interactions.The blue and green spikes of the 2D-RDG (reduced density gradient) and 3D isosurface of probe MPT represent the presence of strong van der Waals attractive interactions and hydrogen bonding present between probe MPT and DFX.In contrast, the red spike of 2D-RDG and red patches of 3D isosurface show the presence of repulsive forces.The 3D isosurfaces and 2D-NCI graphs are assessed to determine the type of attractive and repulsive forces between MPT and DFX.The association between electronic density and RDG is described by the given equation.
In 3D isosurface, its thickness shows the strength of nonbonding interaction.Hence, the thicker patches denote stronger interaction while spot-like little patches denote weak interactions.
Bader's Quantum theory of atom in molecule (QTAIM) extensively analyzes intermolecular non-covalent interactions. 52he topological parameters such as energy density H(r), potential energy density V(r), kinetic energy density G(r) explain the nature of bond while electron density r(r) gives an estimate of the strength of bond critical points (BCPs).

Synthesis
The desired diphenylacetamide based dimethoxyaniline probe MPT was obtained through the treatment of 3,4-dimethoxyaniline with 2,2-diphenylacetyl isothiocyanate (DPIT) which was obtained by displacement of chloride group from diphenylacetyl chloride (DPC) by thiocyanate upon reaction with potassium thiocyanate (Scheme 1). 1 H and 13 C-NMR spectroscopy conrmed the structure of probe MPT.The 1 H-NMR spectrum substantiated the presence of thiourea functionality by two NH proton signals at d 12.27 ppm and d 8.86 ppm.Moreover, the presence of thiourea moiety is also evident from 177.6 ppm carbon signal in 13 C-NMR spectrum.The 1 H, 13 C-NMR and DEPT-135 spectra of this compound are depicted in the ESI.†

Optimization and aggregation studies
Organic uorophores form aggregates with water that tend to alter their uorescence properties.To observe the consequence of aggregates on the uorescence of the probe MPT was investigated in THF and water by the gradual accumulation of water fraction (0-90%).The low emission intensity of MPT was observed in pure THF.Surprisingly, probe MPT showed significant enhancement in its uorescence intensity with the rise in water fraction up to 90% at l max 394 nm that conrm the probe MPT was AIEE active.Aggregates restrict the intermolecular rotation that increases the conjugation of excited electrons which enhances the emission intensity of MPT.The probe MPT contains free rotation along single bonds next to the benzene rings.These intramolecular free rotations cease upon gradual insertion of water fraction (fw).Moreover, aggregates planarize the structure of MPT which enhances the emission of probe MPT.Furthermore, there's a bathochromic shi of 10 nm when the water fraction is increased further from 50%.The emission wavelength is 384 nm at lower water fractions but is shied to a longer wavelength of 394 nm at 60-90% water fraction (Fig. 1a  and b).It could be attributed to a minor formation of Jaggregates at high water fractions due to the alignment of molecules in a restricted geometry such that their dipoles are arranged in a head-to-tail manner.Upon further increasing the water content to 95% and 99% the uorescence intensity was greatly quenched which could plausibly be attributed to excimer formation and concentration quenching.UV absorption spectrum also shows an increase in absorbance upon aggregation, however, absorbance is also decreased at a very high water fraction (Fig. 1c).Resultantly, the 90% water fraction is selected for further uorescent studies as it gives maximum emission at a comparatively longer wavelength.Quantum yield of MPT in different water fraction was also calculated and reported in Table S1a.† Scheme 1 Synthetic strategy to afford the probe MPT.Absorption and emission pattern of deferasirox were also monitored to ensure that the results of the sensor are intrinsic to the sensor instead of showing analyte's uorogenic behaviour.Absorption and emission maxima of deferasirox were at 301 nm and 498 nm respectively (Fig. 1d).An extensive uorescence experimentation of 3,4-dimethoxyaniline was also performed to understand how the uorescent sensor and its one part are related.3,4-Dimethoxyaniline showed sufficient uorescence emission but its uorescence gradually started diminishing upon aggregating with more than 20% water which makes it unsuitable to be used in biological system (Fig. 2a and b).

Fluorescence sensing of DFX
The spectrouorimetric analysis were undergone to study the detection potential of probe MPT toward deferasirox (DFX) in solvent system of water/THF, 9 : 1, v/v.This experiment was carried out by gradually adding (0-100 mM) of targeted analyte vis.deferasirox (DFX), mefenamic acid (MFA), drotaverine (DV), L-methyl folate (L-MTHF), paracetamol (PCM), ebastine (EBA), doxycycline (DOX), hydroxyurea (HYD), glycine (Gly) and aspartic acid (Asp).The emission intensity of probe MPT shows no signicant change with the addition of all other analytes, which conrms the selectivity of deferasirox.The 3D Stern-Volmer was plotted which veried that the uorescence emission intensity of MPT was selectively quenched by deferasirox (Fig. 2c).We observed the reduction in the emission intensity of MPT upon adding DFX.The probe MPT displayed strong emission intensity at 394 nm that quenched gradually upon increasing the concentration of DFX from 10 to 100 mM (Fig. 3a).The uorescence titration experiments were undertaken to assess the binding efficiency of probe MPT with deferasirox (DFX).
The maximum quenching of uorescence emission was observed at the 100 mM concentration of deferasirox (DFX) and the quenching efficiency was calculated to be 59%.Moreover, the SV constant was calculated through the Stern-Volmer equation that veried the selectivity of deferasirox (DFX) with probe MPT.
where I o is the emission intensity of pure MPT, I represent the emission intensity of probe MPT aer the addition of deferasirox (DFX), K sv denotes the Stern-Volmer constant, and [Q] symbolizes the amount of deferasirox (DFX).The relative intensities I o /I of probe MPT were plotted against increasing concentrations of deferasirox (DFX) to obtain the SV graph (Fig. 3b).
The SV graph showed the linear response of deferasirox (DFX) up to 20 mM while at high concentration from 20 mM to 100 mM SV plot showed the steep response of DFX with K sv value of 3.4 × 10 4 M −1 that indicate the strong interaction between MPT and DFX at higher concentration.This can be explained by the occurrence of a proliferation of molecules surrounding probe MPT hence signicantly decreasing the emission intensity and showing positive deviation from SV.Quantum yield of MPT with varifying DFX concentration was calculated and observed to decrease at regular interval (Table S1a †).Similarly, the limit of detection (LOD) of 200 nM was calculated to estimate the sensitivity of probe MPT for deferasirox (DFX) by using the formula 3s/S.The calculated LOD was signicantly less than the already reported deferasirox (DFX) detection probe MPT listed in (Table S1b †).Further, the binding stoichiometry of probe MPT with deferasirox (DFX) was obtained from continuous variance calculation.For this purpose, equimolar solutions of probe MPT with deferasirox (DFX) were prepared.The binding stoichiometry of probe MPT and DFX was perceived through Job's plot which was plotted by increasing the mole  The 0.5 mole fraction of DFX turned out to show maximum uorescence emission which is evident from Job's plot (Fig. S1 †).The binding stoichiometry is 1 : 1 between probe MPT and deferasirox (DFX). 1 H-NMR titration executed among probe MPT and analyte also assists the outcomes from Job's plot.Absorption spectra of MPT and DFX was also analyzed showing signicant difference from l max of MPT that was observed at 394 nm (Fig. 3c and d).
Additionally, DLS analysis was also performed in support of uorescence experiments to conrm the complex formation as the DLS technique is a powerful tool for determining particle size distribution in samples.Herein, the DLS experiment was executed to detect the change in the size of particles before and aer the addition of DFX to the probe MPT in a solvent system of water/THF, 9 : 1.A considerable increase in particle size was identied as the average particle diameter of the probe MPT was 368.2 nm but aer the addition of DFX the average particle diameter turned out to be 525.4nm, consequently suggesting the formation of MPT-DFX complex (Fig. 4).
Moreover, the scanning electron microscopy (SEM) was also performed for probe MPT and MPT-DFX complex in order to monitor the morphological change before and aer the formation of complex.In Fig. 4c, the independent microstructures of probe MPT are clearly visible while Fig. 4d shows the clusters of molecules with cloud-like structures aer MPT-DFX complex formation.
Photostability is among some important factors that affect the probe MPT sensing capabilities that dene real-time applicability.The probe MPT was treated with high-energy radiation to observe its photostability.The emission intensity of probe MPT (10 mM) toward DFX was investigated aer being irradiated with high energy radiation (Fig. S3 †) The quenching efficiency of probe MPT with DFX is insensitive to the high energy excited radiation that ensures excellent photostability.The emission response of probe MPT is also unaffected by varying pH and temperature.Therefore, emission spectra of probe MPT with DFX were obtained at different pH (Fig. S4a †) and a temperature range of 20 °C to 60 °C (Fig. S4b †).No considerable change was detected in the uorescence emission of MPT with DFX; hence it can conrm the sensing of DFX at a wide range of pH and temperature.Similarly, the effect of time was also revealed by obtaining the emission spectrum of probe MPT at different concentrations of DFX and different intervals of time from 8 to 48 hours (Fig. S5a †) and 10 to 60 s (Fig. S5b †).The emission spectra indicate that the probe MPT shows the same quenching toward the DFX at different intervals of time.The results show that the quenching response of probe MPT towards DFX is not dependent on time.

Detection mechanism for deferasirox (DFX)
The 1 H-NMR titration experiment was used to examine the possible sensing mechanism by evaluating the type of interaction between probe MPT and DFX.First of all, the 1 H NMR spectrum of probe MPT and DFX were taken separately.Aer that, the 1 H-NMR spectrum of the MPT-DFX complex was obtained in 1 : 1 concentration and spectra were analyzed to understand the strength of interaction between probe MPT and DFX.The 1 H-NMR titration results showed that there was no substantial change in chemical shis or multiplicity before and aer the formation of the MPT-DFX complex.A doublet of probe MPT from 6.927 and 6.949 ppm shied upeld to 6.925 and 6.947 ppm.Similarly, another doublet of doublet between 7.150 and 7.177 shied to 7.151 and 7.179 ppm clarifying the NCI between the probe MPT and DFX (Fig. 5b).
Optical characteristics of the MPT-DFX complex were revealed by using UV-vis spectroscopy.The probe MPT showed  maximum absorption l abs at 300 nm in UV-vis spectrum.Then aer the addition of DFX in probe MPT, UV-vis spectrum showed only a minor decrease in intensity at l abs with no bathochromic or hypso-chromic shi (Fig. S6 †).Correspondingly, in the uorescence experiment, with the accumulation of DFX in probe MPT, no bathochromic shi or hypso-chromic shi in l max (at 394 nm) along with no emergence of any new peak.On the addition of DFX in the probe MPT quenching was detected in the uorescence emission intensity (Fig. S7 †).Both the UV-vis and uorescence spectra results also suggest that the primary interaction between MPT and DFX was non-covalent.
To get further insight into the origin of sensing DFX through probe MPT, plausible sensing mechanisms responsible for the detection of DFX were investigated.The emission intensity of probe MPT was considerably quenched upon successively adding DFX to it as illustrated through the uorescence titration experiments.Quenching in emission intensity of probe MPT could be due to the transfer of photoexcited electron transfer from donor to acceptor or Förster resonance energy transfer (FRET) between two interacting moieties.FRET mechanism is predicted by the overlap of absorption and emission spectra of the analyte and probe respectively. 53The absorption spectra of the analyte are in the range of 250 nm to 350 nm while the probe MPT shows emission at l max at 394 nm (Fig. S8 †).A very negligible and insignicant overlap of the absorption spectra of DFX and the emission spectrum of MPT excluded the prospect of the existence of FRET mechanism.The possible mechanism is photo-induced electron transfer (PET) which was further supported through NBO analysis by using the DFT methodology.NBO revealed that the −0.02687e − charge was transferred from probe MPT to DFX.Further, the energy gap between HOMO-LUMO orbitals of probe MPT and complex was calculated through FMO analysis.The LUMO of probe MPT was situated at −1.28 eV while the LUMO of DFX resided at −1.60 eV.As the LUMO of probe MPT was found at higher energy as compared to the LUMO of DFX that indicates that charge transfer occurs from probe MPT to DFX (Fig. 5a).To further elucidate the types of interactions between probe MPT and DFX, NCI analysis was carried out which conrmed the van der Waals interactions between MPT and DFX.The weak van der Waals forces between the probe MPT and DFX were basically comprised of p-p stacking of phenyl rings of the probe MPT and DFX are responsible for these weak van der Waals interactions (Fig. 6).These experimental and theoretical studies conrm the interaction through charge transfer between MPT and DFX which can be from the phenolic group of DFX to probe MPT.
Theoretical studies Geometric optimization.The non-covalent interactions and the most thermodynamically stable site of interaction between the probe MPT and DFX were evaluated by calculating the interaction energies (E int ) at various feasible interfaces.The site of interaction of MPT-DFX that has greater interaction energy is more thermodynamically stable and conversely.The computed interaction energies at three different sites I, II and III (Fig. S9 †) were calculated as −19.03, −29.05, and −25.27 kcal mol −1 correspondingly.The highest E int value was calculated to be −29.05kcal mol −1 .Therefore, site II was found to be the optimized interaction site in the MPT-DFX complex.
Electronic properties.The efficiency of the probe towards detecting the analyte is explained by the electronic properties of interacting compounds.HOMO-LUMO energy gap reduction depicts good sensitivity while its expansion depicts resistivity.HOMO of the probe MPT is usually electron rich and donates the electronic charge to LUMO of analyte which is electron decient resulting in HOMO-LUMO energy gap reduction.Electronic properties of probe MPT, before and aer the formation of MPT-DFX complex, were investigated and a prominent change in electronic properties was observed.The probe MPT exhibited HOMO-LUMO energy gap of 4.06 eV while the HOMO level was situated at −5.34 eV and the LUMO level at −1.28 eV.The HOMO-LUMO energy gap turned out to be 3.70 eV aer MPT-DFX complex formation while the HOMO and LUMO levels were shied to −5.33 and −1.63 eV respectively.Moreover, the DOS analysis conrmed the good sensitivity of the MPT against DFX as the HOMO-LUMO energy gap was reduced and new virtual energy levels appeared in DOS spectra (Fig. 7).
Exploration of non-covalent interactions (NCI).The NCI analyses with 3D isosurface and 2D-RDG were performed to investigate the type of interaction between the probe MPT and DFX.Colour contours explain the type of interaction in 3D isosurface as green patches represent weak forces such as van der Waals forces, red areas depict steric repulsions and blue colour is representative of strong interactive forces, for instance, dipole-dipole interactions and H-bonding.The denite green colour at the interaction site in 3D isosurface of the  The presence of green spots indicated weak noncovalent interactions such as p-p stacking.Also, the bluishgreen to blue spikes in the −0.015 to 0.035 region correspond to the weaker to stronger H-bonding (Fig. 8).
NBO and EDD analysis.EDD provides visual assistance in the characterization of non-covalent intermolecular forces and analyses helped estimate the transfer of charge between the probe MPT and the analyte DFX, to recognize the sensing mechanism of the probe against the analyte and to assess the sensitivity and characteristic properties of the probe MPT.Charge transfer is visually displayed by EDD while the magnitude of charge transfer is explained via NBO.The MPT-DFX complex showed indigo patches in the 3D isosurface which depicted the accumulation of charge densities and purple patches revealed the depletion of charge density (Fig. S10 †).Indigo tones in the EDD graph showed the intensication of electronic density in those regions where the atoms of the probe and the analyte interacted which conrmed the consequences of FMO.Furthermore, the magnitude of the NBO charge for MPT aer interaction with DFX was −0.02687e − .QTAIM analysis.Bader et al. rst proposed the QTAIM analysis to analyze the type of non-covalent interaction and bonds between interacting moieties. 52In QTAIM, the interaction type is evaluated through bond critical points (BCPs) via some topological parameters including Laplacian of the charge density (V 2 r), total energy density (H(r)), total electron density (r(r)), potential energy density (V(r)), kinetic energy density (G(r)) and individual bond's interaction energy (E int ).Less than zero values of total energy density and Laplacian of the charge density show covalent interaction while positive non-zero values indicate non-covalent interaction.Additionally, other parameters such as the ratio of V(r) to G(r) also assist in analyzing the types of interaction.If its value is less than 1, it indicates the non-covalent interactions while the value greater than 2 corresponds to the covalent interaction between the probe and the analyte.The eight BCPs were obtained for the MPT-DFX complex (Fig. 8a).The value range of r(r) and V2r(r) turned out to be 0.0054-0.0275and 0.0177-0.0937a.u.respectively.The strong H-bonding between H of MPT and O of the DFX was demonstrated by the large values of r (0.0349 a.u.) and V2r (0.1081 a.u.).The −V(r)/G(r) values showed the strength of interaction as they were greater than 1 but smaller than 2 which denoted the partially covalent H-bonds.Likewise, a very slight covalent H-bonding between S/H, H/O and O/H atoms of the MPT-DFX complex is recognized from the negative values of H(r).Moreover, the other values of topological parameters obtained from QTAIM analyses include G(r), V(r), −V(r)/G(r), and H(r) which assisted in identifying the weak electrostatic forces between the probe and the analyte are shown in Table S3.† SAPT0 analysis.Quantication of four different components (DE elst , DE exch , DE ind , and DE disp ) of interaction energy was carried out with SAPT0 analysis.DE elst elaborates the interaction between MPT and DFX, induction (DE ind ) calculates the extent of interaction in HOMO-LUMO orbitals of MPT and DFX, whereas dispersion (DE disp ) explains the weak van der Waals's interactions.The value of DE elst , DE ind , and DE disp are negative that indicates that interaction between the MPT and DFX is attractive.Positive value of DE exch could be due to repulsive forces generated as a result of interaction between lled orbitals of MPT and DFX.DE SAPT0 for MPT and DFX was found to be −32.02kcal mol −1 (Fig. 9b).

Rapid visual detection of DFX under UV
Visual detection experiments were undergone with the intent to conrm the selectivity of the probe MPT against DFX.Bright uorescence emission of the probe MPT (10 mM) was observed under the UV 365 nm.Conversely, upon adding DFX (100 mM) into the probe solution emission was considerably quenched (Fig. S11 †).However, no noticeable changes occurred upon the interaction with other drugs and amino acids, hence conrming the selectivity of the probe MPT towards DFX.

Probe-coated test strips
The probe-coated low-cost test strips were designed so that the sensing ability of MPT against DFX could be explored.The solution of the probe MPT (50 mM) was poured onto the TLC plates and the TLC plates were dried in drying oven at 50 °C.The probe coated TLC strips showed uorescence emission in UV (365 nm).As one drop of the analyte DFX was added to the TLC plate, a dark spot appeared showing the quenching of emission.Likewise, paper strips were also fabricated for further investigation of the sensing potential of MPT against DFX.In this aspect, a solution of 100 mM water/THF (9 : 1, v/v) was poured onto the Whatman lter paper strips and was dried at 50 °C in the drying oven for 10 minutes.The probe-coated paper strip showed emission in UV (365 nm) and emission change was observed upon the addition of DFX on it with the help of a micropipette (Fig. 10a).Visible difference in emission upon the addition of 50 mM DFX onto fabricated paper strip and TLC strips veried its potential to be used for on-site, rapid and lowcost sensing of DFX (Fig. 10b-j).

Detection of DFX in plasma
Fluorescence spectroscopic experiments were undertaken to assess the practicality of the probe MPT for detecting DFX in human plasma.In that respect, plasma was spiked with concentrations of DFX (20-100 mM).The emission intensity of the 40 mM solution of MPT was quenched noticeably upon adding the known concentration of DFX containing plasma samples in it (Fig. S12a †).The recoveries of DFX spiked samples turned out to be with RSD (relative standard deviation) ranging from 1.18-1.32%are shown in Table S3.† The practicality of probe MPT for sensing DFX in plasma is proved valid by the results.

Detection of DFX in real water samples
Fluorescence sensing was also carried out on real water samples spiked with known concentrations (20-120 mM) of DFX.Upon successive addition of spiked water samples into probe MPT, quenching was observed (Fig. S12b †).Experiments were carried out thrice and RSD (relative standard deviation) was calculated as 1.17-1.29%.The results discussed in Table S4 † conrm that probe MPT can be used for detection in real water samples.

Conclusions
In conclusion, the uorescence probe MPT was utilized for efficient sensing of the deferasirox in real samples.Probe MPT was characterized through 1 H and 13 C NMR spectroscopy.The effective non-covalent interaction between probe MPT and DFX was conrmed through 1 H-NMR, UV-vis, and uorescence spectroscopy.The excellent selectivity of the probe MPT toward DFX was demonstrated through PET-mediated unique quenching response in uorescence emission intensity of probe MPT in the presence of various equivalents of a wide range of interfering species under different conditions.Further, aggregate formation and the complexation of probe MPT with DFX was conrmed by DLS analysis and SEM technique.The DFT calculations supported the presence of weak intermolecular forces and thermodynamic stability of the MPT-DFX complex.NCI results revealed the existence of weak to strong intermolecular interactions.FMO and DOS analysis conrmed the sensitivity of probe MPT for the sensing of DFX.EDD and NBO analyses showed the transfer of charge from probe MPT to DFX while QTAIM and SAPT0 analysis conrmed all possible interactions between individual atoms of MPT-DFX complex.The real-time applications of uorescence probe MPT for DFX detection in plasma and real water samples demonstrated the practical utility of MPT uorescent probe.

Fig. 1
Fig.1(a) Emission spectra of probe MPT at l max = 384 nm that shifted with increasing water fraction up to 99% at l max = 394 nm, (b) effect of water content on relative emission intensity of probe MPT (c) effect of water fraction on absorbance and (d) absorption and emission spectra of deferasirox.

Fig. 3
Fig. 3 (a) Detection response of probe MPT against DFX (0-100 mM) at l max = 394 nm with 90% water fraction and (b) the SV plot of probe MPT against DFX at l ecx = 305 nm (c) absorption spectrum of MPT and (d) absorption spectrum of DFX.

Fig. 4
Fig. 4 The DLS derived particle size distribution of (a) pure probe MPT and (b) MPT-DFX complex; SEM image of (c) probe MPT and (d) MPT-DFX complex.

Fig. 6
Fig. 6 Diagram illustrating the sensing mechanism used to detect DFX.

Fig. 7
Fig. 7 (a) Representation of density of states (DOS) spectra of probe MPT and (b) MPT-DFX complex.